Flexible Dual‐Channel Molecularly Imprinted Electrochemical Sensor for Simultaneously Monitoring Sweat Cortisol and Lactate Levels

Author:

Pei Siying1,Ji Wenhui2,Yang Ya1,Liu Tianwei1,Yang Shuo1,Wu Jiayi1,Dai Jiangxuan2,Hou Xiyan3,Wu Qiong1,Li Lin2ORCID

Affiliation:

1. Key Laboratory of Flexible Electronics (KLOFE) Institute of Advanced Materials (IAM) Nanjing Tech University (NanjingTech) Nanjing 211800 Jiangsu China

2. The Institute of Flexible Electronics (IFE Future Technologies) Xiamen University Xiamen 361005 Fujian China

3. Key Laboratory of Biotechnology and Bioresources Utilization of Ministry of Education College of Life Science Dalian Minzu University (DLMU) Dalian 116600 Liaoning China

Abstract

AbstractWhile exercise offers significant potential to enhance overall well‐being, unscientific exercise practices often cause exercise fatigue, posing a threat to human health. Flexible sweat sensors have garnered considerable attention owing to their ability to continuously, non‐invasively, and dynamically monitor human health during exercise at the molecular level. Therefore, in this study, we constructed a flexible molecularly imprinted polymer (MIP) sensor for the real‐time monitoring of cortisol and lactate levels in sweat using cortisol or lactate as template molecules and pyrrole (Py) as functional monomer. Prussian blue (PB) was embedded into the MIP as a built‐in redox probe, eliminating the need for an additional probe and facilitating the simultaneous quantification of cortisol and lactate concentrations. Moreover, the MIP‐doped platinum nanoparticles (PtNPs) ehanced the electron transfer capability, further improving the sensitivity of the sensors. The fabricated flexibile cortisol and lactate MIP sensors demonstrated low limits of detection (LOD; 1.07 nM and 1.09 mM, respectively), high sensitivity (0.09 μA lg[nM]−1 and 1.28 μA lg[nM]−1), and exceptional stability and selectivity. The flexible MIP sensors could continuously and dynamically monitor changes in sweat cortisol and lactate concentrations, thus contributing to the advancement of next‐generation flexible sweat electrochemical sensors and providing a crucial tool for monitoring exercise fatigue.

Funder

National Natural Science Foundation of China

Fundamental Research Funds for the Central Universities

Publisher

Wiley

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